Submitted:
16 September 2025
Posted:
18 September 2025
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Abstract
Keywords:
1. Introduction
2. Design of Modern TAVI Prostheses
2.1. Nitinol Frame: Properties and Advantages
2.2. Balloon-Expandable Valves: Alternative Materials and Designs
2.3. Valve Leaflets from Xenopericardial Tissue
2.4. Skirts and Protection Against Paravalvular Leak
3. Review of Current Models on the Global Market
3.1. Evolut R / Pro / FX / FX+ (Medtronic - USA)
3.2. Portico / Navitor (Abbott, USA)
3.3. ACURATE Neo2 (Boston Scientific, USA)
3.4. Biovalve (Biotronik, Germany)
3.5. Optimum TAV (Thubrikar Aortic Valve, Inc, USA)
3.6. Hydra, J-Valve, VitaFlow (Asia)
3.7. Analysis of Clinical and Hemodynamic Outcomes Using Different Transcatheter Valve Models
- PPM occurs more frequently in models with intra-annular leaflet placement (e.g., Portico), where the effective orifice area is limited by the size of the aortic annulus. In contrast, prostheses with supra-annular configuration (Evolut, Neo2, Navitor) provide a larger orifice and significantly reduce the risk of PPM, especially in patients with a small annulus. [22]
-
30-day mortality is presented in the range (lowest 1.1%, highest 2.0%)
4. Comparative Analysis of Prostheses
| Model | Manufacturer | Profile (Fr) | Repositioning | Sealing System | Leaflet Position |
| Evolut FX+ | Medtronic | 14 | Yes | Pericardial skirt | Supra-annular |
| Navitor | Abbott | 14 | Yes (Full) | NaviSeal active cuff | Intra-annular |
| ACURATE Neo2 | Boston Scientific | 14-15 | Partial | Int. & Ext. skirts | Supra-annular |
| Portico | Abbott | ~15* | Yes (Full) | (Predecessor to Navitor) | Intra-annular |
| VitaFlow | MicroPort | 16-18 | Yes | Double-layer pericardium | Supra-annular |
| J-Valve | JenaValve | ~18* | No** | Anchors (non-calcium dep.) | Intra-annular |
| Biovalve | Biotronik | ≤16 | Partial | Soft apposition | N/A (Trials) |
| Optimum TAV | Thubrikar Aortic | 16 | No | Pressure compensation | Intra-annular |
5. Analysis by Key Parameters
5.1. Delivery Profile and Repositioning
5.2. Sealing Systems and PVL Protection
5.3. Access to Coronary Arteries After Implantation
6. Prospects and Development Directions
- Reducing the profile to ≤14 Fr without compromising strength and structural stability.
- Using new hybrid materials (including nanocoatings) in catheter sheaths to reduce friction and vascular wall trauma.
- Developing universal introducers with adaptive diameter and self-sealing mechanisms [46].
- Modification of xenopericardial tissues: Tissue leaflets are treated with anti-calcification solutions (e.g., glycerol or new-generation aldehyde stabilizers) to prevent calcium salt deposition.
- Developing bioinert and biocompatible coatings for metal frames to reduce the inflammatory response.
- Implementing structures with shape recovery after load (shape-memory alloys) to compensate for cyclic deformations.
- Asymptomatic aortic stenosis — active clinical evaluation of the possibility of implantation before the manifestation of clinical symptoms to prevent sudden death [49].
- Patients younger than 65 years — with confirmed durability of new generations of prostheses, TAVI could become an alternative to surgical intervention in the young. [50]
- Aortic regurgitation — despite technical difficulties in fixing the prosthesis without calcium, new models (e.g., J-Valve, JenaValve) show promising results.
- Re-implantation (Valve-in-Valve) — experience is growing in replacing old bioprostheses with new-generation TAVI prostheses with high positioning accuracy and good hemodynamics. [51]
Conclusions
- Modern xenopericardial TAVI prostheses with nitinol frames provide a high degree of safety, functionality, and long-term hemodynamic efficacy.
- Most new-generation models (Evolut FX+, Navitor, ACURATE Neo2) demonstrate a significant reduction in paravalvular leakage, the possibility of precise positioning, and reliable access to coronary arteries.
- Thanks to improved delivery systems and reduced profiles, the circle of patients eligible for the procedure is expanding.
- The main directions for further development include minimizing catheter profiles, extending the lifespan of biological tissues, and bioengineering solutions for adaptation to different anatomies and heart conditions.
- TAVI technologies are already transforming cardiac surgery, and their widespread use in younger patient categories, as well as in situations without calcification previously considered contraindications, is expected in the coming years.
- The practical significance lies in the need for early diagnosis of valvular defects and an individualized approach to selecting a TAVI prosthesis based on the patient's anatomy, clinical condition, and expected lifespan.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
References
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